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An Agent-Based Simulator Applied to Teaching-Learning Process to Predict Sociometric Indices in Higher Education

机译:基于代理的模拟器应用于教学过程,以预测高等教育中的社会算法

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Most novice teachers and even some experienced teachers can lack appropriate tools for designing teaching strategies that ensure the quality of education. The ability of working in teams is crucial in educating professionals. The literature proves that social relations influence the performance of teams. For instance, the team cohesion is directly related with its performance. In this paper, we have developed an agent-based tool for assisting teachers in simulating their teaching strategies to estimate their influence on the group sociometrics like cohesion, coherence of reciprocal relations, dissociation, and density of relations. The experiments with nine scenarios in disciplines of computer science, electronic, psychology, business, tourism, and renewal energies with 239 students and 6 teachers including experienced and novice ones show that its underlying agent-based framework can adapt to different disciplines obtaining similar outcomes to the real ones. We learned that the tool was especially reliable in predicting the density of relations and the cohesion, being the latter one probably the most relevant due to its known relation with academic performance. In addition, we also learned that it was difficult to assess the prediction quality of the dissociation in higher education, due to the usual low amounts or absence of reciprocal rejections in the students' groups in this educational stage. The presented agent-based tool is publicly distributed as open source for facilitating other researchers in following this research line.
机译:大多数新手教师甚至一些经验丰富的教师都可以缺乏设计教学策略的适当工具,以确保教育的质量。在团队中工作的能力对于教育专业人士至关重要。文献证明,社会关系影响了团队的表现。例如,团队凝聚力与其性能直接相关。在本文中,我们开发了一种基于代理的工具,协助教师模拟其教学策略,以估计它们对群体社会识别性的影响,如凝聚力,相干关系,解离和关系密度。在计算机科学,电子,心理学,商业,旅游和更新能源中的九个情景的实验,有239名学生和6名教师,包括经验丰富的和新手,其潜在的代理人的框架可以适应不同学科,获得类似的结果真实的。我们了解到,在预测关系和凝聚力的密度方面,该工具特别可靠,由于其与学术表现的已知关系,后者可能是最相关的。此外,我们还了解到,由于在本教育阶段的学生组中通常的少量或缺乏互惠拒绝,难以评估高等教育中的解离的预测质量。呈现的基于代理的工具被公开分发为开源,以促进其他研究人员在遵循本研究系列。

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